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Combustion characteristics of C4 iso-alkane oligomers: Experimental characterization of iso-dodecane as a jet fuel surrogate component

机译:C4异烷烃低聚物的燃烧特性:异十二烷作为航空燃料替代组分的实验表征

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Global combustion characteristics of iso-dodecane (2,2,4,6,6-pentamethylheptane, iC12) are measured and compared to those of iso-octane (2,2,4-trimethylpentane, iC8), iso-cetane (2,2,4,4,6,8,8-heptamethylnonane, iC16) and a 50/50 molar blend of iC8/iC16. The fuels are experimentally characterized by measuring combustion property targets (derived cetane number and smoke point/threshold sooting index), reflected shock ignition delay times at 20 and 40 atm, and extinction limits of strained laminar diffusion flames at 1 atm. The derived cetane number (DCN) and threshold sooting index (TSI) of iC12 are measured to be 16.8 (+/- 1) and 15.4 (+/- 0.5), respectively. In addition to average molecular weight (MW) and overall hydrogen -to -carbon ratio (H/C ratio), the combustion property targets for iC12 are very nearly molar averages of those for iC8 and iC16. Values agree very well with the measured combustion property indicators for the 50/50 blend of iC8/iC16. Further analysis of fuel chemical functional group distributions also finds that the abundances of methylene and methyl groups in iC12 and the 50/50 blend of iC8/iC16 are identical, further supporting that the global combustion characteristics of iC12 can be emulated by the molar averaged mixture of iC8 and iC16. Measurements of reflected shock ignition delays show that the ignition delay times of iC12 are in close agreement with those of the 50/50 molar mixture of iC8/iC16 over a broad range of temperature conditions. It is also found that the ignition delays of the three neat iso-alkanes exhibit quantitatively identical behaviors for both high and low temperature regimes, an observation that can guide the construction of combustion kinetic models for iC12. Measurements of strained diffusion flame extinction and their interpretation by the transport -weighted enthalpy (TWE) metric also support that the high temperature chemical kinetic potentials of the three iso-alkanes are essentially identical. Moreover, it is shown that molecular diffusivity (inherent in molecular weight) is the major parameter that differentiates flame extinction behaviors amongst the three iso-alkanes. In summary, this experimental study further supports the utility and characteristics of combustion property target formulation concepts for producing mixtures that emulate the pre -vaporized global combustion properties of a specific target fuel. The work also points to a strong correlation of the combustion property target data for these iso-alkanes with methylene and methyl functional group distributions for each fuel. (C) 2015 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:测量了异十二烷(2,2,4,6,6-五甲基庚烷,iC12)的整体燃烧特性,并将其与异辛烷(2,2,4-三甲基戊烷,iC8),异十六烷(2, 2,4,4,6,8,8-七甲基壬烷,iC16)和50/50摩尔的iC8 / iC16混合物。通过测量燃烧特性目标(得出的十六烷值和烟点/阈值烟ot指数),在20和40 atm处反射的冲击点火延迟时间以及在1 atm处的应变层流扩散火焰的熄灭极限,来对燃料进行实验表征。 iC12的十六烷值(DCN)和烟CN指数(TSI)的测量值分别为16.8(+/- 1)和15.4(+/- 0.5)。除了平均分子量(MW)和总氢碳比(H / C比)以外,iC12的燃烧特性指标非常接近iC8和iC16的摩尔平均值。这些值与iC8 / iC16的50/50混合物的实测燃烧性能指标非常吻合。对燃料化学官能团分布的进一步分析还发现,iC12中的亚甲基和甲基丰度与iC8 / iC16的50/50共混物相同,这进一步表明可以通过摩尔平均混合物模拟iC12的总体燃烧特性。 iC8和iC16。反射冲击点火延迟的测量结果表明,iC12的点火延迟时间与iC8 / iC16的50/50摩尔混合物的点火延迟时间非常吻合。还发现,三种纯净异烷烃的点火延迟在高温和低温条件下均表现出定量相同的行为,这一观察结果可指导iC12燃烧动力学模型的构建。应变扩散火焰消光的测量及其通过输运加权焓(TWE)度量的解释也支持三种异烷烃的高温化学动力学势基本相同。而且,表明分子扩散率(分子量固有)是区分三种异烷烃之间的熄灭行为的主要参数。总而言之,这项实验研究进一步支持了燃烧特性目标配方概念在生产模仿特定目标燃料的预汽化整体燃烧特性的混合物方面的实用性和特性。这项工作还指出,这些异链烷烃的燃烧特性目标数据与每种燃料的亚甲基和甲基官能团分布密切相关。 (C)2015年燃烧研究所。由Elsevier Inc.出版。保留所有权利。

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